Microfluidic Imaging

Microfluidic imaging is a technique that combines microscale fluid control with optical or electrical imaging to observe cells, molecules, and dynamic biological processes in precisely engineered environments. Within networks of microchannels, pumps or pressure-driven flow direct small volumes, while compartments and chemical gradients isolate cells and control their exposure to stimuli during time-lapse acquisition. In neuroscience, these systems can separate neuronal cell bodies from axons, guide neurite growth, and enable measurement of transport, signaling, migration, and responses to drugs or injury. By linking controlled experimental conditions with high-resolution observation, microfluidic imaging supports reproducible studies of neural circuits and models of neurodevelopment and disease.

Microfluidic Imaging - Related Videos

Research

JoVE Journal - Biology

Studies of Bacterial Chemotaxis Using Microfluidics - Interview

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Cited by 1 •

2007

Research

JoVE Journal - Bioengineering
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Image-guided, Laser-based Fabrication of Vascular-derived Microfluidic Networks

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Cited by 10 •

2017

This protocol outlines the implementation of image-guided, laser-based hydrogel degradation to fabricate vascular-derived, biomimetic microfluidic networks embedded in poly(ethylene glycol) diacrylate (PEGDA) hydrogels. These biomimetic microfluidic systems may be useful for tissue engineering applications, generation of in vitro disease models, and fabrication of advanced "on-a-chip" devices.

A Microfluidic Device for Real-Time Imaging and Pressure Tracking During Biofilm Formation

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2026

Source: Kurz, D. L., et al. Microfluidic Platform to Study Bioclogging in Porous Media. J. Vis. Exp. (2022)The video demonstrates the use of a microfluidic device to study biofilm formation. A bacterial suspension is introduced into the microchannel, followed by incubation to allow biofilm development. Flow is then resumed, and pressure monitoring along with imaging is used to detect biofilm formation and pore blockage over time.

A Microfluidic Technique to Probe Cell Deformability

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Cited by 20 •

2014

We demonstrate a microfluidics-based assay to measure the timescale for cells to transit through a sequence of micron-scale constrictions.

Multi-step Variable Height Photolithography for Valved Multilayer Microfluidic Devices

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Cited by 26 •

2017

Multilayer microfluidic devices often involve the fabrication of master molds with complex geometries for functionality. This article presents a complete protocol for multi-step photolithography with valves and variable height features tunable to any application. As a demonstration, we fabricate a microfluidic droplet generator capable of producing hydrogel beads.

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